US3860843A - Rotating electric machine with reduced cogging - Google Patents

Rotating electric machine with reduced cogging Download PDF

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US3860843A
US3860843A US343673A US34367373A US3860843A US 3860843 A US3860843 A US 3860843A US 343673 A US343673 A US 343673A US 34367373 A US34367373 A US 34367373A US 3860843 A US3860843 A US 3860843A
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stator
permanent magnet
poles
rotor
salient poles
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US343673A
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Itaru Kawasaki
Kazutsugu Kobayashi
Yoshiaki Igarashi
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Panasonic Holdings Corp
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Matsushita Electric Industrial Co Ltd
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Priority claimed from JP5635070A external-priority patent/JPS498569B1/ja
Priority claimed from JP5634770A external-priority patent/JPS498568B1/ja
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K21/00Synchronous motors having permanent magnets; Synchronous generators having permanent magnets
    • H02K21/12Synchronous motors having permanent magnets; Synchronous generators having permanent magnets with stationary armatures and rotating magnets
    • H02K21/22Synchronous motors having permanent magnets; Synchronous generators having permanent magnets with stationary armatures and rotating magnets with magnets rotating around the armatures, e.g. flywheel magnetos

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  • the cogging force is made smaller by shaping both sides of the periphery of each stator salient pole.
  • the ratio of the number of the stator salient poles to the rotor permanent magnet poles is such as to make the rotation of the rotor smooth in spite of variations in the magnetization of the permanent magnet rotor poles.
  • This invention relates to a new rotating electric machine, more particularly to a rotating electric machine the rotor of which has a multipole permanent magnet, and the stator of which has a shape suitable for winding the stator coils quickly.
  • a multipole structure is indispensable for a rotating electric machine which rotates at a low speed, in spite of such a structure being hard to manufacture.
  • the stator for such a machine and its winding are complicated.
  • the conventional stator of multipole type consists of a plurality of teeth and slots. These slots become narrower as the number of poles increases. Then it is difficult to wind the stator winding directly and quickly around the teeth. These operations are difficult to mechanize.
  • stator slots In a lap winding the number of stator slots is a multiple of the number of poles in the rotor permanent magnet. As all slots are occupied by stator coils, many stator coils are required. After a plurality of coils are formed beforehand, they are inserted into slots with a few slots between them, and they are connected to each other so as to be able to interact with the rotor permanent magnet. As a results, the stator coils must be loose in lap winding. The portions of the stator coil which occupy the slots contribute to generating a torque or an electromotive force. The other portions of the stator coil which do not occupy the slots, are ineffective for generating torque or electromotive force. Said other portions of the stator coil are called coil ends.
  • the length of the coil ends is large, because the coil ends extend across a plurality of slots, each of which is arranged at the same pitch. Because of the aforementioned two reasons, a larger amount of copper wire is necessary, which results in a greater copper loss, which in turn causes a less efficient performance of the rotating electric machine. Further, the iron loss consisting of hysteresis loss and an eddy current loss increases, as there are lots of narrow teeth gathering a high density of magnetic flux from the rotor permanent magnet. Moreover, a harmful vibration remarkably occurs, because of an intense cogging force generated by the interaction between the stator iron core and the rotor permanent magnet. The interaction will be described in detail later on. In order to reduce said cogging force, a skewed stator slot is usually used. But this makes the stator winding more difficult to wind.
  • stator core where stator coils are wound on one stator tooth, that is to say, one stator salient pole.
  • a stator core is often used in a machine of the type having only a few poles, for instance in a machine which has a combination of three stator salient poles and two rotor permanent magnet poles, or in a machine having a combination of four stator salient poles and two rotor permanent magnet poles.
  • the same ratio of the number of stator salient poles to the number of rotor permanent magnet poles in the above machines can be used in a rotating electric machine having a multipole structure.
  • stator salient poles are more than the number of rotor permanent magnet poles, many stator coils are still required.
  • the gaps between the stator salient poles must be large to permit forming the stator winding without difficulty.
  • the greater the number of poles in the rotating electric machine the narrower the top part of the stator salient pole which faces the rotor permanent magnet. As it is, the stator winding has an excessively short pitch compared with the pitch of the rotor magnet poles. Therefore, the magnetic flux of the rotor permanent magnet is not fully utilized.
  • the object of the invention is to provide a rotating electric machine having a multipole rotor permanent magnet which has a simple stator structure in order to make winding of the stator easy.
  • Another object of the invention is to provide a rotating electric machine having a smaller cogging force between the rotor permanent magnet and the stator core made of magnetic material.
  • FIG. 1 is a schematic view of a three-phase 20-pole type DC. motor having an arrangement of stator salient poles and rotor permanent magnet poles in accordance with one preferred embodiment of the present invention
  • FIG. 2 is a circuit diagram of a device for obtaining a control signal to regulate the speed of a rotating electric machine for explaining the present invention.
  • FIG. 3 is a graph indicating the pattern of the control signal obtained by the circuit of FIG. 2 when combined with the motor shown in FIG. 1.
  • each salient pole facing the rotor permanent magnet is wider than the bottom part thereof on which a stator coil is wound, so that not only can the stator winding be made easily, but the stator core effectively gathers the magnetic flux from the rotor permanentmagnet.
  • a stator winding consists of three stator phase windings X, Y, and Z. As shown in FIG.
  • the corresponding coils of each of the stator coil groups X Y and z,- are, of course, suitably connected to form the stator phase winding.
  • the phase windings are spaced one hundred and twenty electrical degrees from one another.
  • the cogging force is generated by the interaction between the rotor permanent magnet and the stator core made of magnetic material, such as iron, even if said stator core is not energized by the electric current.
  • the rotor permanent magnet has a plurality of magnetic poles, each of which pulls the stator core.
  • the force between the stator and the rotor is influenced by the shape of the stator core and the distribution of the magnet charge in the rotor permanent magnet.
  • the cogging force is determined by the convolution of the stator shape function as defined by the shape of the stator core and the rotor magnetic distribution function related to the magnetic charge of the rotor permanent magnet.
  • the stator shape function is represented by a periodic function with a fundamental period of 60 cycles per revolution
  • the rotor magnetic distribution function is represented by a periodic function with a fundamental period of 20 cycles per revolution.
  • Said stator shape function is expanded in a Fourier series having a fundamental component with a period of sixty cycles per revolution and its harmonic components.
  • Said rotor magnetic distribution function is also expanded to a series having a fundamental component with a period of 20 cycles per revolution and its harmonic components.
  • the convolution of said two functions is a linear combination of sine wave components whose periods are composed of a common multiple of fundamental periods of said two functions. Therefore, the cogging force is represented by a fundamental component with a period of 60 cycles per revolution and its the cogging force is a product of the amplitudes of the fundamental component of the stator shape function and the third harmonic component of the rotor magnetic distribution function.
  • the number 60 coincides with the fundamental period in the stator shape function, and the third harmonic component of the rotor magnetic distribution function which has a period of 60 cycles is inevitable because the magnetization of a permanent magnet cannot be controlled precisely. Then the amplitude of the fundamental component in the cogging force, which is a sine wave with a period of 60 cycles, becomes large. As a result, a large cogging force is generated 60 times per revolution of the rotor.
  • stator shape function consists of a fundamental component with a period of 15 cycles per revolution and its harmonic components
  • the rotor magnetic distribution function consists of a fundamental component with a period of 20 cycles per revolution and its harmonic components.
  • the common multiple of the periods of said two functions is 60 and its multiples. Therefore, the fundamental component of the cogging forcehas a period with 60 cycles per revolution.
  • the amplitude of the fundamental component in the cogging force is a multiple of the amplitudes-of the fourth hannonic component of the stator shape function and the third harmonic componentof the rotor magnetic distribution function.
  • the fundamental component of 60 cycles in the cogging force is not related at all to the fundamental component of the stator shape function which has a period of fifteen cycles.
  • the fundamental cogging force is not due to the fundamental component of the stator shape function, since the number of the stator salient poles is less than that of the rotor permanent magnet poles. Consequently, this rotating electric machine generates less cogging force, and rotates smoothly. Because it is practically free from wow and flutter, it is especially suitable for audio equipment.
  • stator is composed of a relatively few stator salient poles
  • the gap between said stator salient poles can be designed to be relatively wide and the number of the stator coils becomes smaller.
  • a stator coil can be wound on each of the stator salient poles easily and directly. If the width of the bottom part of the stator salient pole on which the stator coil is wound is narrower than the top part of the stator salient pole, yet is wide enough so that it is not saturated with magnetic flux, the length of the coil ends, which does not contribute to the rotation of the machine, is reduced. Therefore, the copper losses decrease.
  • stator has relatively few stator salient poles and each of the stator salient poles need not be given an extremely narrow width.
  • the top part of the stator salient poles is changeable in width. Then it is possible to design the rotating electric machine either as a short pitch winding type or as a long pitch winding type.
  • said rotor magnetic distribution function may include a component with a period of one cycle per revolution and its harmonic components. Because the stator shape function consists of a component with a period of 15 cycles per revolution and its harmonic components, the convolution of the stator shape function and said rotor magnetic distribution function includes components with three periods, i.e., 15 cycles, thirty cycles and 45 cycles per revolution.
  • the component having a period of 15 cycles per revolution is due to the fundamental components of the stator shape function for a stator core having 15 salient poles.
  • the top part of said stator salient pole which faces the rotor permanent magnet can be wide, so that the stator coil can be wound without difficulty. Because the wide top part of the stator salient pole decreases the amplitude of the fundamental component of the stator shape function, the cogging force having a period of 15 cycles per revolution is reduced.
  • the components with the periods of 30 cycles and 45 cycles per revolution in the cogging force are higher harmonic components than the component with the period of 15 cycles, and are due to the higher harmonic components than fifteen cycles per revolution in the stator shape function.
  • reference numerals 5, 6, and 7 designate the sides and center on the periphery of the stator salient pole 2,, on every stator salient pole.
  • the gap between each of the stator salient poles and the permanent magnet is larger at both sides 5 and 6 of the stator salient pole than at the center 7 of the stator salient pole.
  • the amplitudes of the higher harmonic components in the shape function decrease.
  • the cogging force decreases, too.
  • stator coils of said stator phase winding interact with the magnetic flux from the portion of the rotor permanent magnet which faces said stator coils.
  • the magnetic flux interlinking with the stator coils is from the rotor permanent magnet facing said stator coils. If there is a magnetic unbalance in a plurality of the rotor permanent magnet poles, the magnetic flux which is gathered in the stator coils has an unbalance corresponding to said rotor permanent magnet. But the magnetic unbalance of the magnetic flux gathered at the stator phase winding statistically decreases, because each stator phase winding consists of five stator coils.
  • the stator coils belonging to one stator phase winding are arranged at the samepitch around the periphery of the stator core.
  • the total magnetic flux which is gathered in one stator phase winding at a given instant is equal to that after the rotor rotates mechanically by 360l5, i.e., electrically 2+3 60, if every stator salient pole is consisered magnetically equivalent and the number of turns of each of the stator coils is the same.
  • stator phase winding X which has the stator coils X, interacts with the rotor permanent magnet poles N and after the rotor rotates 360/5, said stator phase winding X still interacts with the rotor permanent magnet poles N
  • the pitch of two magnetic pole pairs (N S (N S in the rotor permanent magnet corresponds to the angular pitch of said stator salient poles belonging to the same stator phase such as the angular pitch between coils X, and X
  • the stator phase winding is crossed by the two rotor permanent magnet pole pairs, that is, four magnetic poles.
  • the stator phase winding alternately interacts with only two pole pair groups of the rotor permanent magnet, as the motor rotates.
  • the number of said families of pole pairs of the rotor permanent magnet is defined hereinafter as the number of states.” For example, in the above case the motor has two states. The fluctuation of generated torque decreases according to the decrease of said number of states.
  • reference numeral 4 designates the motor shown in FIG. 1.
  • the first terminals of the stator phase windings X, Y and Z are connected together to a power supplying terminal 12.
  • the secondary terminals of said stator phase windings X, Y and Z are connected to a point 18 through switching means 9, l0 and 11, respectively.
  • Said switching means 9, and 11 can operate selectively in such a conventional way of usual commutators operation as shown and described in e.g., Electrical Engineering, November 1962, pages 879-884 or U.S. Pat. No. 3,274,471.
  • a resistor 13 having a resistance value r is connected between a point 14 and said power supplying terminal 12.
  • a resistor 15 having a resistance value r is connected between said point 14 and the other power supplying terminal 16.
  • the power supplying terminal 12 is positive and the other terminal 16 is negative.
  • a resistor 17 having a resistance value r;, is connected between the point 18 and said other power supplying terminal 16.
  • the point 8 is connected to the power supplying terminal 12.
  • the motor 4 revolves, when the stator winding is energized by the power source through the switching means 9, l0 and 11, which operate selectively in relation to the relative position between the pole pairs of the rotor permanent magnet and the stator phase windings X, Y and Z.
  • a counter electromotive force (abbreviated as CEMF) is induced in said stator winding.
  • CEMF counter electromotive force
  • the secondary terminals of the stator phase windings are connected respectively to the anodes of diodes 19, 20 and 21.
  • the cathodes of said diodes 19, 20 and 21 are connected together at a point 22.
  • a voltage e between the points 8 and 22 is the CEMF rectified by the diodes 19, 20 and 21. Said voltage e is not mixed with the current flowing in the stator winding, so far as the motor 4 is operated by the half wave current. Therefore, the voltage e is proportional to the motor running speed, and it can be also used for control of the motor.
  • the motor can be regulated to run at a substantially constant speed by providing the stator winding through the commutators, i.e., switching means with the output voltage from said amplifying means. In short, a negative feedback loop is formed.
  • FIG. 3 shows that the voltage e, or e; is induced alternately where there are only two states. There this signal is used for controlling the rotor speed, the current supplied to the stator winding depends on the signal e, or e The rotor can rotate most smoothly when the number of the states is a minimum.
  • stator element The group of the adjacent stator salient poles which includes only one stator coil of the respective stator winding phase is designated as a stator element hereinafter.
  • a stator element consists of three stator salient poles, and faces two pole pairs of the rotor permanent magnet.
  • stator element faces p pole pairs of the rotor permanent magnet, the magnetic flux interacting with each stator winding has p states.
  • the number of the states relates to the wow-flutter characteristic, it is desirable that the number of said states should be a minimum.
  • the stator element consists of five stator salient poles. Said stator element must face two pole pairs, i.e., four poles, of
  • the rotor permanent magnet in order to have two states. But this combination is not possible, because the number of stator salient poles would be greater than the number of the rotor permanent poles. Therefore, the stator element would face three pole pairs, i.e., six poles, of the rotor permanent magnet and this motor will have three states. Generally, if the stator winding has (2n+l) phases where n is an integer, it is most adequate where the number of the stator salient poles is less than the number of the rotor permanent poles and the permanent magnet has poles in a ratio of (2n+2)/(2n+l) to the number of said salient poles and the number of states is (n+1).
  • stator winding has (2n) phases
  • the permanent magnet has a number of poles in a ratio of (n+1 )In to the number of said salient poles and the number of states is (n+1).
  • the rotating electric machine which has only two states must have rotor permanent poles and stator salient poles for a ratio of 4/3 in three phase winding or 4/2 for a two phase winding. But the latter machine cannot start by itself, when it is used as the DC. motor, because the number of the rotor permanent magnet poles is a multiple of the number of the stator salient poles. Thus the former machine is superior to the others.
  • a machine with fewer phases, such as three phases is desirable in order to reduce the number of electronic parts of the driving circuits.
  • a rotating electric machine comprising a rotor having a pennanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of'which is wound on each of said salient poles and connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has (2n+l) phases, and said permanent magnet having a number of poles in a ratio of (Zn +2 )/(2n+l) to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
  • stator winding has 3 phases
  • permanent magnet has a number of poles in a ratio of 4/3 to the number of said salient poles.
  • each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
  • each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at thesides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
  • a rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has 2n phases, and said permanent magnet has a number of poles in a ratio of (n+1 )/n to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
  • a rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, the number of said salient poles being a multiple of the number of phases and less than the number of said permanent magnet poles, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said pole than at the center thereof, so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
  • each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the cenpoles.

Abstract

A rotating electric machine of the multipole type which has a permanent magnet rotor magnetized in such a way that the number of stator salient poles is less than the number of permanent magnet poles. The machine has a smaller cogging force and is easily manufactured. The cogging force is made smaller by shaping both sides of the periphery of each stator salient pole. The ratio of the number of the stator salient poles to the rotor permanent magnet poles is such as to make the rotation of the rotor smooth in spite of variations in the magnetization of the permanent magnet rotor poles.

Description

United States Patent Kawasaki et al.
[4 1 Jan. 14, 1975 ROTATING ELECTRIC MACHINE WITH REDUCED COGGING [73] Assignee: Matsushita Electric Industrial C0,,
Ltd., Osaka, Japan [22] Filed: Mar. 22, 1973 [21] Appl. No.: 343,673
Related U.S. Application Data [63] Continuation of Ser. No. 154,450, June 18, 1971,
abandoned.
[30] Foreign Application Priority Data June 26, 1970 Japan 45-56347 June 26, 1970 Japan 45-56350 [52] U.S. Cl. 310/67, 310/156 [51] Int. Cl. I-I02k 21/22 [58] Field of Search 320/67, 156, 254-259,
[56] References Cited UNITED STATES PATENTS 3,230,434 1/1966 Baucrlein 310/156 X 3,299,335 l/l967 Wessels........ 310/156 X 3,586,942 6/1971 McMahan 310/156 X Primary Examiner-Donovan F. Duggan Attorney, Agent, or Firm-Wenderoth, Lind & Ponack [57] ABSTRACT A rotating electric machine of the multipole type which has a permanent magnet rotor magnetized in such a way that the number of stator salient poles is less than the number of permanent magnet poles. The machine has a smaller cogging force and is easily manufactured. The cogging force is made smaller by shaping both sides of the periphery of each stator salient pole. The ratio of the number of the stator salient poles to the rotor permanent magnet poles is such as to make the rotation of the rotor smooth in spite of variations in the magnetization of the permanent magnet rotor poles.
7 Claims, 3 Drawing Figures PATENIEI] JAN 1'4l975 sum 10F INVENTORS ITARU KAWASAKI KAZUTSUGU KOBAYASl-H YOSHIAKI IGARASl-H ATTORNEYS PATENTEDJANWQYEI 3.860.843
sum 20F 5 INVENTORS ITARU KAWA SAKI KAZUTSUGU KOBAYASHI YOSHIAKI IGARASl-H I BY ZwcK ATTORNEYS PATENTED JAN 1 M975 SHEET 3 BF 3 IN VENTORS ATTORNEYS ROTATING ELECTRIC MACHINE WITH REDUCED COGGING This application is a continuation of U.S. application Ser. No. 154,450, filed June 18, 1971, now abandoned.
This invention relates to a new rotating electric machine, more particularly to a rotating electric machine the rotor of which has a multipole permanent magnet, and the stator of which has a shape suitable for winding the stator coils quickly.
A multipole structure is indispensable for a rotating electric machine which rotates at a low speed, in spite of such a structure being hard to manufacture. Apart from the difficulties in making a rotor permanent magnet having a multipole structure, the stator for such a machine and its winding are complicated. The conventional stator of multipole type consists of a plurality of teeth and slots. These slots become narrower as the number of poles increases. Then it is difficult to wind the stator winding directly and quickly around the teeth. These operations are difficult to mechanize.
In a lap winding the number of stator slots is a multiple of the number of poles in the rotor permanent magnet. As all slots are occupied by stator coils, many stator coils are required. After a plurality of coils are formed beforehand, they are inserted into slots with a few slots between them, and they are connected to each other so as to be able to interact with the rotor permanent magnet. As a results, the stator coils must be loose in lap winding. The portions of the stator coil which occupy the slots contribute to generating a torque or an electromotive force. The other portions of the stator coil which do not occupy the slots, are ineffective for generating torque or electromotive force. Said other portions of the stator coil are called coil ends. In a lap winding, the length of the coil ends is large, because the coil ends extend across a plurality of slots, each of which is arranged at the same pitch. Because of the aforementioned two reasons, a larger amount of copper wire is necessary, which results in a greater copper loss, which in turn causes a less efficient performance of the rotating electric machine. Further, the iron loss consisting of hysteresis loss and an eddy current loss increases, as there are lots of narrow teeth gathering a high density of magnetic flux from the rotor permanent magnet. Moreover, a harmful vibration remarkably occurs, because of an intense cogging force generated by the interaction between the stator iron core and the rotor permanent magnet. The interaction will be described in detail later on. In order to reduce said cogging force, a skewed stator slot is usually used. But this makes the stator winding more difficult to wind.
On the other hand, in order to make winding the stator easy, there is provided a stator core where stator coils are wound on one stator tooth, that is to say, one stator salient pole. Such a stator core is often used in a machine of the type having only a few poles, for instance in a machine which has a combination of three stator salient poles and two rotor permanent magnet poles, or in a machine having a combination of four stator salient poles and two rotor permanent magnet poles. The same ratio of the number of stator salient poles to the number of rotor permanent magnet poles in the above machines can be used in a rotating electric machine having a multipole structure. However, because the number of stator salient poles is more than the number of rotor permanent magnet poles, many stator coils are still required. In addition, the gaps between the stator salient poles must be large to permit forming the stator winding without difficulty. Furthermore, the greater the number of poles in the rotating electric machine, the narrower the top part of the stator salient pole which faces the rotor permanent magnet. As it is, the stator winding has an excessively short pitch compared with the pitch of the rotor magnet poles. Therefore, the magnetic flux of the rotor permanent magnet is not fully utilized.
The object of the invention is to provide a rotating electric machine having a multipole rotor permanent magnet which has a simple stator structure in order to make winding of the stator easy.
Another object of the invention is to provide a rotating electric machine having a smaller cogging force between the rotor permanent magnet and the stator core made of magnetic material.
Other objects and advantages of the invention will become apparent from the following detailed description of an exemplary structure embodying the invention taken together with the accompanying drawings, in which:
FIG. 1 is a schematic view of a three-phase 20-pole type DC. motor having an arrangement of stator salient poles and rotor permanent magnet poles in accordance with one preferred embodiment of the present invention;
FIG. 2 is a circuit diagram of a device for obtaining a control signal to regulate the speed of a rotating electric machine for explaining the present invention; and
FIG. 3 is a graph indicating the pattern of the control signal obtained by the circuit of FIG. 2 when combined with the motor shown in FIG. 1.
Referring now to FIG. 1, there is shown a rotor yoke l and a stator 3. The rotor yoke 1 has a permanent magnet 2 mounted on the inner periphery facing the stator and magnetized so as to have 10 mangetic pole pairs, that is 20 magnet poles. They are designated hereinafter as N and S (i=1, 2, 3, 4, 5; j=l,2), wherein N designates the north pole and S designates the south pole. The stator core 3 has 15 salient poles x,, y;, and 2; (i=1, 2, 3, 4, 5). The top part of each salient pole facing the rotor permanent magnet is wider than the bottom part thereof on which a stator coil is wound, so that not only can the stator winding be made easily, but the stator core effectively gathers the magnetic flux from the rotor permanentmagnet. On said bottom part of the stator salient poles, stator coils X Y,- and Z, (i=1, 2, 3, 4, 5) are wound. A stator winding consists of three stator phase windings X, Y, and Z. As shown in FIG. 1, the stator phase windings X, Y and Z each includes five stator coils belonging to the same phase, X, (i=1, 2, 3, 4, 5), Y, (i=1, 2, 3, 4, 5), and Z, ('Fl, 2, 3, 4, 5), respectively. The corresponding coils of each of the stator coil groups X Y and z,- are, of course, suitably connected to form the stator phase winding. And the phase windings are spaced one hundred and twenty electrical degrees from one another.
First, there will be given a description of the cogging force. The cogging force is generated by the interaction between the rotor permanent magnet and the stator core made of magnetic material, such as iron, even if said stator core is not energized by the electric current. The rotor permanent magnet has a plurality of magnetic poles, each of which pulls the stator core. The
force between the stator and the rotor is influenced by the shape of the stator core and the distribution of the magnet charge in the rotor permanent magnet. Mathematically the cogging force is determined by the convolution of the stator shape function as defined by the shape of the stator core and the rotor magnetic distribution function related to the magnetic charge of the rotor permanent magnet. For example, in a rotating electric machine which is composed of a stator core having 60 slots and a rotor permanent magnet having poles, the stator shape function is represented by a periodic function with a fundamental period of 60 cycles per revolution, and the rotor magnetic distribution function is represented by a periodic function with a fundamental period of 20 cycles per revolution. Said stator shape function is expanded in a Fourier series having a fundamental component with a period of sixty cycles per revolution and its harmonic components. Said rotor magnetic distribution function is also expanded to a series having a fundamental component with a period of 20 cycles per revolution and its harmonic components. According to the properties of the orthogonal function, the convolution of said two functions is a linear combination of sine wave components whose periods are composed of a common multiple of fundamental periods of said two functions. Therefore, the cogging force is represented by a fundamental component with a period of 60 cycles per revolution and its the cogging force is a product of the amplitudes of the fundamental component of the stator shape function and the third harmonic component of the rotor magnetic distribution function. The number 60 coincides with the fundamental period in the stator shape function, and the third harmonic component of the rotor magnetic distribution function which has a period of 60 cycles is inevitable because the magnetization of a permanent magnet cannot be controlled precisely. Then the amplitude of the fundamental component in the cogging force, which is a sine wave with a period of 60 cycles, becomes large. As a result, a large cogging force is generated 60 times per revolution of the rotor.
In combination having a stator core with 15 salient poles and a rotor permanent magnet of twenty poles, such as shown in FIG. 1, the stator shape function consists of a fundamental component with a period of 15 cycles per revolution and its harmonic components,
and the rotor magnetic distribution function consists of a fundamental component with a period of 20 cycles per revolution and its harmonic components. The common multiple of the periods of said two functions is 60 and its multiples. Therefore, the fundamental component of the cogging forcehas a period with 60 cycles per revolution. But the amplitude of the fundamental component in the cogging force is a multiple of the amplitudes-of the fourth hannonic component of the stator shape function and the third harmonic componentof the rotor magnetic distribution function. The fundamental component of 60 cycles in the cogging force is not related at all to the fundamental component of the stator shape function which has a period of fifteen cycles. The fundamental cogging force is not due to the fundamental component of the stator shape function, since the number of the stator salient poles is less than that of the rotor permanent magnet poles. Consequently, this rotating electric machine generates less cogging force, and rotates smoothly. Because it is practically free from wow and flutter, it is especially suitable for audio equipment.
Because the stator is composed of a relatively few stator salient poles, the gap between said stator salient poles can be designed to be relatively wide and the number of the stator coils becomes smaller. A stator coil can be wound on each of the stator salient poles easily and directly. If the width of the bottom part of the stator salient pole on which the stator coil is wound is narrower than the top part of the stator salient pole, yet is wide enough so that it is not saturated with magnetic flux, the length of the coil ends, which does not contribute to the rotation of the machine, is reduced. Therefore, the copper losses decrease. Further, the iron loss due to the magnetic flux from the rotor permanent magnet decreases, because the stator has relatively few stator salient poles and each of the stator salient poles need not be given an extremely narrow width. In this case, the top part of the stator salient poles is changeable in width. Then it is possible to design the rotating electric machine either as a short pitch winding type or as a long pitch winding type.
The above explanation of cogging force is applicable when the rotor magnetic distribution function does not include harmonic components which have frequencies lower than 20 cycles per revolution. Where there is a variation in the magnetization of the poles of the rotor permanent magnet, said rotor magnetic distribution function may include a component with a period of one cycle per revolution and its harmonic components. Because the stator shape function consists of a component with a period of 15 cycles per revolution and its harmonic components, the convolution of the stator shape function and said rotor magnetic distribution function includes components with three periods, i.e., 15 cycles, thirty cycles and 45 cycles per revolution. Of said three components of cogging force, the component having a period of 15 cycles per revolution is due to the fundamental components of the stator shape function for a stator core having 15 salient poles. The top part of said stator salient pole which faces the rotor permanent magnet can be wide, so that the stator coil can be wound without difficulty. Because the wide top part of the stator salient pole decreases the amplitude of the fundamental component of the stator shape function, the cogging force having a period of 15 cycles per revolution is reduced. The components with the periods of 30 cycles and 45 cycles per revolution in the cogging force are higher harmonic components than the component with the period of 15 cycles, and are due to the higher harmonic components than fifteen cycles per revolution in the stator shape function. Referring again to FIG. 1, reference numerals 5, 6, and 7 designate the sides and center on the periphery of the stator salient pole 2,, on every stator salient pole. The gap between each of the stator salient poles and the permanent magnet is larger at both sides 5 and 6 of the stator salient pole than at the center 7 of the stator salient pole. In this preferred embodiment of this. invention, the amplitudes of the higher harmonic components in the shape function decrease. Thus the cogging force decreases, too.
In FIG. 1, when the current flows in a stator phase winding, the stator coils of said stator phase winding interact with the magnetic flux from the portion of the rotor permanent magnet which faces said stator coils. The magnetic flux interlinking with the stator coils is from the rotor permanent magnet facing said stator coils. If there is a magnetic unbalance in a plurality of the rotor permanent magnet poles, the magnetic flux which is gathered in the stator coils has an unbalance corresponding to said rotor permanent magnet. But the magnetic unbalance of the magnetic flux gathered at the stator phase winding statistically decreases, because each stator phase winding consists of five stator coils. Therefore, the magnetic unbalance of the rotor permanent magnet poles has hardly any influence on the motor revolution. In FIG. 1, the stator coils belonging to one stator phase winding are arranged at the samepitch around the periphery of the stator core. Thus the total magnetic flux which is gathered in one stator phase winding at a given instant is equal to that after the rotor rotates mechanically by 360l5, i.e., electrically 2+3 60, if every stator salient pole is consisered magnetically equivalent and the number of turns of each of the stator coils is the same. In other words, the stator phase winding X which has the stator coils X, interacts with the rotor permanent magnet poles N and after the rotor rotates 360/5, said stator phase winding X still interacts with the rotor permanent magnet poles N The pitch of two magnetic pole pairs (N S (N S in the rotor permanent magnet corresponds to the angular pitch of said stator salient poles belonging to the same stator phase such as the angular pitch between coils X, and X While the rotor rotates mechanically by 360/5, the stator phase winding is crossed by the two rotor permanent magnet pole pairs, that is, four magnetic poles. The stator phase winding alternately interacts with only two pole pair groups of the rotor permanent magnet, as the motor rotates. The foregoing description is for rotor permanent magnet pole pairs (N S where j=l and 2 to make for easy understanding, but it should be noted that the whole rotor permanent magnet is divided into two families of pole pairs, i.e., the pairs where j=l and the pairs where j--2. Therefore, said stator phase windings alternately interact with only two families of the rotor permanent magnet pole paris. The number of said families of pole pairs of the rotor permanent magnet is defined hereinafter as the number of states." For example, in the above case the motor has two states. The fluctuation of generated torque decreases according to the decrease of said number of states.
Referring to FIG. 2, reference numeral 4 designates the motor shown in FIG. 1. The first terminals of the stator phase windings X, Y and Z are connected together to a power supplying terminal 12. The secondary terminals of said stator phase windings X, Y and Z are connected to a point 18 through switching means 9, l0 and 11, respectively. Said switching means 9, and 11 can operate selectively in such a conventional way of usual commutators operation as shown and described in e.g., Electrical Engineering, November 1962, pages 879-884 or U.S. Pat. No. 3,274,471. A resistor 13 having a resistance value r, is connected between a point 14 and said power supplying terminal 12. A resistor 15 having a resistance value r is connected between said point 14 and the other power supplying terminal 16. The power supplying terminal 12 is positive and the other terminal 16 is negative. A resistor 17 having a resistance value r;, is connected between the point 18 and said other power supplying terminal 16.
The point 8 is connected to the power supplying terminal 12.
The motor 4 revolves, when the stator winding is energized by the power source through the switching means 9, l0 and 11, which operate selectively in relation to the relative position between the pole pairs of the rotor permanent magnet and the stator phase windings X, Y and Z. A counter electromotive force (abbreviated as CEMF) is induced in said stator winding. As is well known, the potential difference e between the points 14 and 18 is proportional to said CEMF under the condition of r,,/r =r,/r wherein r is the internal resistance value of the motor 4. Since the CEMF is proportional to the running speed of the motor, the voltage e can be used as a speed controlling signal.
The secondary terminals of the stator phase windings are connected respectively to the anodes of diodes 19, 20 and 21. The cathodes of said diodes 19, 20 and 21 are connected together at a point 22.
A voltage e between the points 8 and 22 is the CEMF rectified by the diodes 19, 20 and 21. Said voltage e is not mixed with the current flowing in the stator winding, so far as the motor 4 is operated by the half wave current. Therefore, the voltage e is proportional to the motor running speed, and it can be also used for control of the motor.
Further, if, in addition to the speed detecting means such as of FIG. 2, there are provided a reference signal means (not shown) generating a reference voltage which is proportional to the predetermined speed of the motor, and a differential means (not shown) coupled to said speed detecting means and said reference signal means for producing a difference voltage and including a D.C. signal amplifying means for amplifying the difference voltage between the output of said speed detecting means and the output of said reference signal means, the motor can be regulated to run at a substantially constant speed by providing the stator winding through the commutators, i.e., switching means with the output voltage from said amplifying means. In short, a negative feedback loop is formed. This technique of regulating a motor at a constant speed is well known in the art such as of U.S. Pat. Nos. 2,814,012 and 3,274,471. If the speed of the rotor increases, the voltage e, or e increases. As the reference voltage is constant, the difference voltage between the voltage e or 2 and said reference voltage decreases. Therefore, the output voltage of the amplifying means, which is given to both terminals of the stator winding, also decreases. This causes a decrease in the generating torque and speed of the motor. On the other hand, if the rotor speed falls below the predetermined speed, said torque and speed of the motor also increase. In such a way, the speed of the rotor is controlled desirably. Further details of such motor speed controlling are apparent from e.g., abovementioned U.S. Pat. Nos. 2,814,0l2 or 3,274,471. The output of said reference signal means is a D.C. signal. Therefore, the result of subtracting said reference signal from the output of said speed detecting means is that the ripple component of said output signal of the speed detecting means becomes dominant. Consequently, the ripple component of said output signal of the speed detecting means should be as small as possible.
FIG. 3 shows that the voltage e, or e; is induced alternately where there are only two states. There this signal is used for controlling the rotor speed, the current supplied to the stator winding depends on the signal e, or e The rotor can rotate most smoothly when the number of the states is a minimum.
The group of the adjacent stator salient poles which includes only one stator coil of the respective stator winding phase is designated as a stator element hereinafter. For the motor shown in FIG. 1, a stator element consists of three stator salient poles, and faces two pole pairs of the rotor permanent magnet.
If a stator element faces p pole pairs of the rotor permanent magnet, the magnetic flux interacting with each stator winding has p states. As the number of the states relates to the wow-flutter characteristic, it is desirable that the number of said states should be a minimum. In a five phase rotating electric machine, the stator element consists of five stator salient poles. Said stator element must face two pole pairs, i.e., four poles, of
the rotor permanent magnet in order to have two states. But this combination is not possible, because the number of stator salient poles would be greater than the number of the rotor permanent poles. Therefore, the stator element would face three pole pairs, i.e., six poles, of the rotor permanent magnet and this motor will have three states. Generally, if the stator winding has (2n+l) phases where n is an integer, it is most adequate where the number of the stator salient poles is less than the number of the rotor permanent poles and the permanent magnet has poles in a ratio of (2n+2)/(2n+l) to the number of said salient poles and the number of states is (n+1). If the stator winding has (2n) phases, it is most adequate that the permanent magnet has a number of poles in a ratio of (n+1 )In to the number of said salient poles and the number of states is (n+1). The rotating electric machine which has only two states must have rotor permanent poles and stator salient poles for a ratio of 4/3 in three phase winding or 4/2 for a two phase winding. But the latter machine cannot start by itself, when it is used as the DC. motor, because the number of the rotor permanent magnet poles is a multiple of the number of the stator salient poles. Thus the former machine is superior to the others. Expecially when an electronic commutator is used, a machine with fewer phases, such as three phases, is desirable in order to reduce the number of electronic parts of the driving circuits.
Various modifications may be made to the examples described. Thus, for instance, if the stator winding is energized by A.C. current instead of DC. current, said rotating electric machine can be operated as a multipole type synchronous motor which runs at low synchronous speed, and which has many advantages as described hereinbefore.
What we claim is:
l. A rotating electric machine comprising a rotor having a pennanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of'which is wound on each of said salient poles and connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has (2n+l) phases, and said permanent magnet having a number of poles in a ratio of (Zn +2 )/(2n+l) to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
2. A rotating electric machine as defined in claim 1, wherein said stator winding has 3 phases, and said permanent magnet has a number of poles in a ratio of 4/3 to the number of said salient poles.
3. A rotating electric machine as defined in claim 2, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
4. A rotating electric machine as defined in claim 1, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at thesides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
5. A rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has 2n phases, and said permanent magnet has a number of poles in a ratio of (n+1 )/n to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
6. A rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, the number of said salient poles being a multiple of the number of phases and less than the number of said permanent magnet poles, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said pole than at the center thereof, so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
7. A rotating electric machine as defined in claim 5,
wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the cenpoles.

Claims (7)

1. A rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has (2n+1) phases, and said permanent magnet having a number of poles in a ratio of (2n +2)/(2n+ 1) to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
2. A rotating electric machine as defined in claim 1, wherein said stator winding has 3 phases, and said permanent magnet has a number of poles in a ratio of 4/3 to the number of said salient poles.
3. A rotating electric machine as defined in claim 2, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
4. A rotating electric machine as defined in claim 1, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor Equal to the number of salient poles.
5. A rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, wherein said stator winding has 2n phases, and said permanent magnet has a number of poles in a ratio of (n+1)/n to the number of said salient poles, and each of said stator salient poles belonging to one phase being magnetically positioned at the same position as that of the corresponding pole of said rotor.
6. A rotating electric machine comprising a rotor having a permanent magnet with a plurality of poles therearound, a stator core having a plurality of salient poles therearound, and a plurality of stator coils, each of which is wound on each of said salient poles and which are connected to each other so as to form a stator winding having a plurality of phases, the number of said salient poles being a multiple of the number of phases and less than the number of said permanent magnet poles, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said pole than at the center thereof, so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
7. A rotating electric machine as defined in claim 5, wherein each of said salient poles faces said permanent magnet and has the pole face shaped such that the gap between each salient pole and said permanent magnet is larger at the sides of said salient pole than at the center thereof so that the cogging force decreases for harmonic components higher than a number of cycles per revolution of the rotor equal to the number of salient poles.
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Cited By (101)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3961211A (en) * 1974-01-15 1976-06-01 Crouzet Gyroscope motor
US4086647A (en) * 1976-10-15 1978-04-25 Synchro-Start Products, Inc. Amplitude responsive speed switch control
US4097754A (en) * 1976-10-20 1978-06-27 Tecumseh Products Company Short pitch alternator
US4280072A (en) * 1977-05-26 1981-07-21 Matsushita Electric Industrial Co., Ltd. Rotating electric machine
US4291235A (en) * 1979-02-26 1981-09-22 Bergey Jr Karl H Windmill
US4303843A (en) * 1979-07-18 1981-12-01 Societe Chauvin Arnoux Multiple magnetic flywheel driven by a centrifugal clutch
US4305304A (en) * 1979-04-25 1981-12-15 The Bendix Corporation Motor sustained stored energy gyroscope
US4359657A (en) * 1979-06-04 1982-11-16 Matsushita Electric Industrial Co., Ltd. Rotation speed signal detector
US4484114A (en) * 1982-03-04 1984-11-20 Rotron, Incorporated Self-starting brushless DC motor
EP0128961A1 (en) * 1982-12-24 1984-12-27 Fanuc Ltd. Synchronous motor
US4532460A (en) * 1982-07-12 1985-07-30 Eaton Corporation Pre-start rotor positioner for an electric vehicle
US4651066A (en) * 1982-06-07 1987-03-17 Eaton Corporation Ferrite permanent magnet electrical machine and the application thereof within vehicle traction drives
US4713569A (en) * 1986-06-20 1987-12-15 501 Aeroflex Laboratories, Incorporated Low cogging motor
US4719378A (en) * 1984-04-23 1988-01-12 Kabushiki Kaisha Yaskawa Denki Seisakasho Brushless motor having permanent magnet rotor and salient pole stator
US4751416A (en) * 1984-08-31 1988-06-14 Ab Elmo Synchronous servomotor
US4812692A (en) * 1985-04-30 1989-03-14 Mitsubishi Chemical Industries Limited Motor
US4847526A (en) * 1985-07-11 1989-07-11 Nippon Ferrofluidics Corporation Variant-pole electric motor
US4874975A (en) * 1984-11-13 1989-10-17 Digital Equipment Corporation Brushless DC motor
GB2220529A (en) * 1988-07-05 1990-01-10 Philips Nv Reducing detent torque in multipole d.c. electric motors
US4928051A (en) * 1987-05-05 1990-05-22 Jozsef Demeter Electric motor
US4952859A (en) * 1988-11-30 1990-08-28 Canon Kabushiki Kaisha Stepping motor
DE3911602A1 (en) * 1989-04-08 1990-10-18 Vdo Schindling DC motor with permanent magnet rotor and pulsed stator - has electronic commutation, axially aligned stator slots, two layer trifurcated winding and uneven slot count
US5099165A (en) * 1989-12-18 1992-03-24 U.S. Philips Corporation Brushless d.c. motor
US5138213A (en) * 1989-12-13 1992-08-11 U.S. Philips Corporation Brushless d.c. motor
EP0553354A1 (en) * 1990-10-19 1993-08-04 Seiko Epson Corporation Brushless DC motor without position sensor
US5532531A (en) * 1993-11-01 1996-07-02 Japan Servo Co., Ltd. Permanent magnet type brushless motor
EP0740397A2 (en) * 1995-04-26 1996-10-30 Minebea Co.,Ltd. Stator structure for rotary electric machine
US5642009A (en) * 1992-09-02 1997-06-24 Electric Power Research Institute, Inc. Quasi square-wave back-EMF permanent magnet AC machines with five or more phases
US5652470A (en) * 1980-06-06 1997-07-29 Papst Licensing, Gmbh Brushless DC drive motor with external rotor for use in disc drives and like devices
WO1998000902A1 (en) * 1996-07-02 1998-01-08 Domel Elektromotorji In Gospodinjski Aparati, D.O.O. Electronically commutated motor for direct drive of washing machine drum
US5723931A (en) * 1996-01-17 1998-03-03 Mpc Products Corporation Multiple pole, multiple phase, permanent magnet motor and method for winding
US5783890A (en) * 1995-06-26 1998-07-21 Cleveland Motion Controls, Inc. Imprinted geometric magnetic anticog permanent magnet motor
US5831366A (en) * 1992-06-11 1998-11-03 Generac Corporation Permanent magnet alternator
US5864443A (en) * 1981-09-07 1999-01-26 Papst Licensing, Gmbh Disk storage device having a detachable coupling ring in the hub
US5923110A (en) * 1997-03-17 1999-07-13 Industrial Technology Research Institute Spindle motor for optical disc drives
US5955810A (en) * 1997-05-26 1999-09-21 Denso Corporation Alternator for vehicle
EP0957567A2 (en) * 1998-05-12 1999-11-17 Eaton Corporation Torque motor and drive circuit
US6044737A (en) * 1997-04-02 2000-04-04 Industrial Technology Research Institute Stator of and arc shaping method for brushless motor
US6081058A (en) * 1995-06-07 2000-06-27 Minebea Co., Ltd. Motor structure having a permanent magnet motor with grooves to reduce torque ripples
US6144131A (en) * 1995-06-07 2000-11-07 General Electric Company Dynamoelectric machine rotor having interleaved laminations and method for forming
US6172438B1 (en) * 1995-04-19 2001-01-09 Japan Servo Company, Ltd. Two-phase permanent-magnet electric rotating machine
US6181047B1 (en) * 1997-12-15 2001-01-30 Kabushiki Kaisha Toshiba Permanent magnet motor with improved stator core and washing machine provided therewith
US6204584B1 (en) 2000-01-18 2001-03-20 Cleveland Motion Controls, Inc. Low cogging torque brushless motor rotor
US6218760B1 (en) * 1998-12-22 2001-04-17 Matsushita Electric Industrial Co., Ltd. Brushless motor
US6313558B1 (en) * 1999-01-18 2001-11-06 Japan Servo Co., Ltd. Electric rotary machine having concentrated winding stator
US20030034699A1 (en) * 2000-10-24 2003-02-20 Steven Selewski Brushless motor
US20030107289A1 (en) * 2001-10-01 2003-06-12 Thornton Richard D. Synchronous machine design and manufacturing
USRE38178E1 (en) 1980-05-10 2003-07-08 Papst Licensing Gmbh & Co. Kg Disk storage device having an underhub spindle motor
US6664696B1 (en) * 2000-02-29 2003-12-16 Seagate Technology Llc Tooth saturation for reduced electromagnetic harmonics
US6744171B1 (en) 2001-10-09 2004-06-01 Valeo Electrical Systems, Inc. Rotating electric machine with sloped tooth surfaces for cogging torque reduction
USRE38601E1 (en) 1980-05-10 2004-09-28 Papst Licensing, GmbH & Co. KG Disk storage device having a radial magnetic yoke feature
USRE38662E1 (en) 1980-05-10 2004-11-30 Papst Licensing Gmbh & Co. Kg Disk storage device having a sealed bearing tube
USRE38673E1 (en) 1980-05-10 2004-12-21 Papst Licensing Gmbh & Co. Kg Disk storage device having a hub sealing member feature
US6858960B1 (en) 2002-09-17 2005-02-22 Dana Corporation Low cogging permanent magnet motor
US20050088047A1 (en) * 2003-10-22 2005-04-28 Crapo Alan D. Brushless permanent magnet motor with high power density, low cogging and low vibration
WO2005011098A3 (en) * 2003-07-21 2005-05-26 Kollmorgen Corp Highly efficient permanent magnet brushless motor
USRE38772E1 (en) 1981-03-18 2005-08-09 Papst Licensing Gmbh & Co. Kg Disk storage device having an undercut hub member
US20050194859A1 (en) * 2004-02-26 2005-09-08 Lg Electronics Inc. Stator of outer rotor type motor for drum type washing machine
US20050194848A1 (en) * 2004-03-02 2005-09-08 Ahn In G BLDC Motor
US20050263369A1 (en) * 2004-05-07 2005-12-01 Magnemotion, Inc. Three-dimensional motion using single-pathway based actuators
US20060091744A1 (en) * 2004-10-29 2006-05-04 Hilton Daniel E Self-cooling electric machine
US20060130699A1 (en) * 2001-10-01 2006-06-22 Magnemotion, Inc. Suspending, guiding and propelling vehicles using magnetic forces
US20070044676A1 (en) * 2005-07-22 2007-03-01 Magnemotion Inc. Guideway activated magnetic switching of vehicles
US20080111436A1 (en) * 2002-10-01 2008-05-15 Isamu Takehara Permanent magnet for a motor, motor, and magnetizing method
US20080246224A1 (en) * 2005-09-21 2008-10-09 High Technology Investments, B.V. Combined Labyrinth Seal and Screw-Type Gasket Bearing Sealing Arrangement
US20080315594A1 (en) * 2001-09-13 2008-12-25 High Technology Investments, Bv Wind power generator and bearing structure therefor
US20090001907A1 (en) * 2007-06-27 2009-01-01 Brooks Automation, Inc. Commutation of an electromagnetic propulsion and guidance system
US20090033173A1 (en) * 2007-06-27 2009-02-05 Brooks Automation, Inc. Motor stator with lift capability and reduced cogging characteristics
US20090096309A1 (en) * 2005-11-29 2009-04-16 High Technology Investments, B.V. Core plate stack assembly for permanent magnet rotor of rotating machines
US20090302702A1 (en) * 2005-11-29 2009-12-10 High Technology Investments, B.V. Magnet holder for permanent magnet rotors of rotating machines
US20100066188A1 (en) * 2008-09-16 2010-03-18 Asmo Co., Ltd. Brushless motor
US20100117362A1 (en) * 2008-11-12 2010-05-13 Rolic Invest S.Ar.L. Wind power turbine
US20100176600A1 (en) * 2008-06-19 2010-07-15 Rolic Invest S.Ar.L. Wind power generator equipped with a cooling system
US20100193394A1 (en) * 2009-01-30 2010-08-05 Wilic S.Ar.L. Wind power turbine blade packing and packing method
US20110025310A1 (en) * 2007-06-27 2011-02-03 Brooks Automation, Inc. Position feedback for self bearing motor
US20110187218A1 (en) * 2009-08-07 2011-08-04 Wilic S.Ar.L. Method and apparatus for activating an electric machine, and electric machine
CN102163902A (en) * 2011-03-23 2011-08-24 高林发 Staggered multi-driving direct-current brushless motor
US8120198B2 (en) 2008-07-23 2012-02-21 Wilic S.Ar.L. Wind power turbine
US20120126654A1 (en) * 2010-11-23 2012-05-24 Nexteer (Beijing) Technology Co., Ltd. Permanent magnet brushless motor
US8274170B2 (en) 2009-04-09 2012-09-25 Willic S.A.R.L. Wind power turbine including a cable bundle guide device
US8283813B2 (en) 2007-06-27 2012-10-09 Brooks Automation, Inc. Robot drive with magnetic spindle bearings
WO2013025550A2 (en) * 2011-08-12 2013-02-21 Aerovironment, Inc. Electric motor
US20130076195A1 (en) * 2010-03-25 2013-03-28 Panasonic Corporation Motor and electrical apparatus housing same
US8410623B2 (en) 2009-06-10 2013-04-02 Wilic S. AR. L. Wind power electricity generating system and relative control method
US8541902B2 (en) 2010-02-04 2013-09-24 Wilic S.Ar.L. Wind power turbine electric generator cooling system and method and wind power turbine comprising such a cooling system
US8618689B2 (en) 2009-11-23 2013-12-31 Wilic S.Ar.L. Wind power turbine for generating electric energy
US8659867B2 (en) 2009-04-29 2014-02-25 Wilic S.A.R.L. Wind power system for generating electric energy
US8669685B2 (en) 2008-11-13 2014-03-11 Wilic S.Ar.L. Wind power turbine for producing electric energy
US8680803B2 (en) 2007-07-17 2014-03-25 Brooks Automation, Inc. Substrate processing apparatus with motors integral to chamber walls
US8803513B2 (en) 2007-06-27 2014-08-12 Brooks Automation, Inc. Multiple dimension position sensor
US8937397B2 (en) 2010-03-30 2015-01-20 Wilic S.A.R.L. Wind power turbine and method of removing a bearing from a wind power turbine
US8937398B2 (en) 2011-03-10 2015-01-20 Wilic S.Ar.L. Wind turbine rotary electric machine
US8957555B2 (en) 2011-03-10 2015-02-17 Wilic S.Ar.L. Wind turbine rotary electric machine
US8975770B2 (en) 2010-04-22 2015-03-10 Wilic S.Ar.L. Wind power turbine electric generator and wind power turbine equipped with an electric generator
US9006918B2 (en) 2011-03-10 2015-04-14 Wilic S.A.R.L. Wind turbine
US20150340913A1 (en) * 2014-05-22 2015-11-26 Delta Electronics, Inc. Low-cog permanent magnet motor
US20150365029A1 (en) * 2014-06-16 2015-12-17 Hyundai Motor Company Sensorless control method for motor and system using the same
US9346371B2 (en) 2009-01-23 2016-05-24 Magnemotion, Inc. Transport system powered by short block linear synchronous motors
US9752615B2 (en) 2007-06-27 2017-09-05 Brooks Automation, Inc. Reduced-complexity self-bearing brushless DC motor
US9771000B2 (en) 2009-01-23 2017-09-26 Magnemotion, Inc. Short block linear synchronous motors and switching mechanisms
US9802507B2 (en) 2013-09-21 2017-10-31 Magnemotion, Inc. Linear motor transport for packaging and other uses

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3230434A (en) * 1962-09-18 1966-01-18 Gen Precision Inc Motor fitted with hall generator and semiconductor controls
US3299335A (en) * 1963-03-12 1967-01-17 Philips Corp Self-starting direct-current motors having no commutator
US3586942A (en) * 1968-08-19 1971-06-22 James E Mcmahan Self commutated motor having a 16-18 ratio of armature poles to rotor poles

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3230434A (en) * 1962-09-18 1966-01-18 Gen Precision Inc Motor fitted with hall generator and semiconductor controls
US3299335A (en) * 1963-03-12 1967-01-17 Philips Corp Self-starting direct-current motors having no commutator
US3586942A (en) * 1968-08-19 1971-06-22 James E Mcmahan Self commutated motor having a 16-18 ratio of armature poles to rotor poles

Cited By (151)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3961211A (en) * 1974-01-15 1976-06-01 Crouzet Gyroscope motor
US4086647A (en) * 1976-10-15 1978-04-25 Synchro-Start Products, Inc. Amplitude responsive speed switch control
US4097754A (en) * 1976-10-20 1978-06-27 Tecumseh Products Company Short pitch alternator
US4280072A (en) * 1977-05-26 1981-07-21 Matsushita Electric Industrial Co., Ltd. Rotating electric machine
US4291235A (en) * 1979-02-26 1981-09-22 Bergey Jr Karl H Windmill
US4305304A (en) * 1979-04-25 1981-12-15 The Bendix Corporation Motor sustained stored energy gyroscope
US4359657A (en) * 1979-06-04 1982-11-16 Matsushita Electric Industrial Co., Ltd. Rotation speed signal detector
US4303843A (en) * 1979-07-18 1981-12-01 Societe Chauvin Arnoux Multiple magnetic flywheel driven by a centrifugal clutch
USRE38179E1 (en) 1980-05-10 2003-07-08 Papst Licensing Gmbh & Co. Kg Disk storage device having a three-phase brushless DC underhub configured spindle motor
USRE38178E1 (en) 1980-05-10 2003-07-08 Papst Licensing Gmbh & Co. Kg Disk storage device having an underhub spindle motor
USRE38601E1 (en) 1980-05-10 2004-09-28 Papst Licensing, GmbH & Co. KG Disk storage device having a radial magnetic yoke feature
USRE38662E1 (en) 1980-05-10 2004-11-30 Papst Licensing Gmbh & Co. Kg Disk storage device having a sealed bearing tube
USRE38673E1 (en) 1980-05-10 2004-12-21 Papst Licensing Gmbh & Co. Kg Disk storage device having a hub sealing member feature
US5652470A (en) * 1980-06-06 1997-07-29 Papst Licensing, Gmbh Brushless DC drive motor with external rotor for use in disc drives and like devices
USRE36168E (en) * 1980-06-06 1999-03-30 Papst Licensing,Gmbh Brushless DC drive motor with external rotor for use in disc drives and like devices
US5661351A (en) * 1980-06-06 1997-08-26 Papst Licensing, Gmbh Disc drive having a brushless DC drive motor with an external rotor for supporting one or more storage discs
USRE38772E1 (en) 1981-03-18 2005-08-09 Papst Licensing Gmbh & Co. Kg Disk storage device having an undercut hub member
US5864443A (en) * 1981-09-07 1999-01-26 Papst Licensing, Gmbh Disk storage device having a detachable coupling ring in the hub
US4484114A (en) * 1982-03-04 1984-11-20 Rotron, Incorporated Self-starting brushless DC motor
US4651066A (en) * 1982-06-07 1987-03-17 Eaton Corporation Ferrite permanent magnet electrical machine and the application thereof within vehicle traction drives
US4532460A (en) * 1982-07-12 1985-07-30 Eaton Corporation Pre-start rotor positioner for an electric vehicle
EP0128961A1 (en) * 1982-12-24 1984-12-27 Fanuc Ltd. Synchronous motor
EP0128961A4 (en) * 1982-12-24 1985-07-01 Fanuc Ltd Synchronous motor.
US4719378A (en) * 1984-04-23 1988-01-12 Kabushiki Kaisha Yaskawa Denki Seisakasho Brushless motor having permanent magnet rotor and salient pole stator
US4751416A (en) * 1984-08-31 1988-06-14 Ab Elmo Synchronous servomotor
US4874975A (en) * 1984-11-13 1989-10-17 Digital Equipment Corporation Brushless DC motor
US4812692A (en) * 1985-04-30 1989-03-14 Mitsubishi Chemical Industries Limited Motor
US4847526A (en) * 1985-07-11 1989-07-11 Nippon Ferrofluidics Corporation Variant-pole electric motor
US4713569A (en) * 1986-06-20 1987-12-15 501 Aeroflex Laboratories, Incorporated Low cogging motor
US4928051A (en) * 1987-05-05 1990-05-22 Jozsef Demeter Electric motor
GB2220529A (en) * 1988-07-05 1990-01-10 Philips Nv Reducing detent torque in multipole d.c. electric motors
US5030864A (en) * 1988-07-05 1991-07-09 U. S. Philips Corporation Three-phase electrical machine with reduced cogging torque
GB2220529B (en) * 1988-07-05 1992-10-21 Philips Nv Reducing detent torque in three phase electric motors.
US4952859A (en) * 1988-11-30 1990-08-28 Canon Kabushiki Kaisha Stepping motor
DE3911602A1 (en) * 1989-04-08 1990-10-18 Vdo Schindling DC motor with permanent magnet rotor and pulsed stator - has electronic commutation, axially aligned stator slots, two layer trifurcated winding and uneven slot count
US5138213A (en) * 1989-12-13 1992-08-11 U.S. Philips Corporation Brushless d.c. motor
US5099165A (en) * 1989-12-18 1992-03-24 U.S. Philips Corporation Brushless d.c. motor
EP0553354A4 (en) * 1990-10-19 1994-11-02 Seiko Epson Corp Brushless dc motor without position sensor and its controller
EP0553354A1 (en) * 1990-10-19 1993-08-04 Seiko Epson Corporation Brushless DC motor without position sensor
US5831366A (en) * 1992-06-11 1998-11-03 Generac Corporation Permanent magnet alternator
US5642009A (en) * 1992-09-02 1997-06-24 Electric Power Research Institute, Inc. Quasi square-wave back-EMF permanent magnet AC machines with five or more phases
US5532531A (en) * 1993-11-01 1996-07-02 Japan Servo Co., Ltd. Permanent magnet type brushless motor
US6172438B1 (en) * 1995-04-19 2001-01-09 Japan Servo Company, Ltd. Two-phase permanent-magnet electric rotating machine
EP0740397B1 (en) * 1995-04-26 2004-04-07 Minebea Co.,Ltd. Stator structure for rotary electric machine
EP0740397A2 (en) * 1995-04-26 1996-10-30 Minebea Co.,Ltd. Stator structure for rotary electric machine
US6144131A (en) * 1995-06-07 2000-11-07 General Electric Company Dynamoelectric machine rotor having interleaved laminations and method for forming
US6081058A (en) * 1995-06-07 2000-06-27 Minebea Co., Ltd. Motor structure having a permanent magnet motor with grooves to reduce torque ripples
US5783890A (en) * 1995-06-26 1998-07-21 Cleveland Motion Controls, Inc. Imprinted geometric magnetic anticog permanent magnet motor
US5723931A (en) * 1996-01-17 1998-03-03 Mpc Products Corporation Multiple pole, multiple phase, permanent magnet motor and method for winding
WO1998000902A1 (en) * 1996-07-02 1998-01-08 Domel Elektromotorji In Gospodinjski Aparati, D.O.O. Electronically commutated motor for direct drive of washing machine drum
US5923110A (en) * 1997-03-17 1999-07-13 Industrial Technology Research Institute Spindle motor for optical disc drives
US6044737A (en) * 1997-04-02 2000-04-04 Industrial Technology Research Institute Stator of and arc shaping method for brushless motor
US5955810A (en) * 1997-05-26 1999-09-21 Denso Corporation Alternator for vehicle
US6181047B1 (en) * 1997-12-15 2001-01-30 Kabushiki Kaisha Toshiba Permanent magnet motor with improved stator core and washing machine provided therewith
EP0957567A2 (en) * 1998-05-12 1999-11-17 Eaton Corporation Torque motor and drive circuit
EP0957567A3 (en) * 1998-05-12 2000-12-27 Eaton Corporation Torque motor and drive circuit
US6218760B1 (en) * 1998-12-22 2001-04-17 Matsushita Electric Industrial Co., Ltd. Brushless motor
US6313558B1 (en) * 1999-01-18 2001-11-06 Japan Servo Co., Ltd. Electric rotary machine having concentrated winding stator
US6204584B1 (en) 2000-01-18 2001-03-20 Cleveland Motion Controls, Inc. Low cogging torque brushless motor rotor
US6664696B1 (en) * 2000-02-29 2003-12-16 Seagate Technology Llc Tooth saturation for reduced electromagnetic harmonics
US6777844B2 (en) 2000-10-24 2004-08-17 Rexair, Inc. Brushless motor
US20030034699A1 (en) * 2000-10-24 2003-02-20 Steven Selewski Brushless motor
US20100140955A1 (en) * 2001-09-13 2010-06-10 High Technology Investments B.V. Wind power current generator
US7687932B2 (en) 2001-09-13 2010-03-30 High Technology Investments B.V. Wind power generator and bearing structure therefor
US7893555B2 (en) 2001-09-13 2011-02-22 Wilic S.Ar.L. Wind power current generator
US20080315594A1 (en) * 2001-09-13 2008-12-25 High Technology Investments, Bv Wind power generator and bearing structure therefor
US20060130699A1 (en) * 2001-10-01 2006-06-22 Magnemotion, Inc. Suspending, guiding and propelling vehicles using magnetic forces
US6917136B2 (en) * 2001-10-01 2005-07-12 Magnemotion, Inc. Synchronous machine design and manufacturing
US7538469B2 (en) * 2001-10-01 2009-05-26 Magnemotion, Inc. Synchronous machine design and manufacturing
US20030107289A1 (en) * 2001-10-01 2003-06-12 Thornton Richard D. Synchronous machine design and manufacturing
US7448327B2 (en) 2001-10-01 2008-11-11 Magnemotion, Inc. Suspending, guiding and propelling vehicles using magnetic forces
US20050242675A1 (en) * 2001-10-01 2005-11-03 Magnemotion, Inc. Synchronous machine design and manufacturing
US6744171B1 (en) 2001-10-09 2004-06-01 Valeo Electrical Systems, Inc. Rotating electric machine with sloped tooth surfaces for cogging torque reduction
US6858960B1 (en) 2002-09-17 2005-02-22 Dana Corporation Low cogging permanent magnet motor
US20080111436A1 (en) * 2002-10-01 2008-05-15 Isamu Takehara Permanent magnet for a motor, motor, and magnetizing method
US7105973B2 (en) * 2003-07-21 2006-09-12 Kollmorgen Corporation Highly efficient permanent magnet brushless motor
EP1652282A4 (en) * 2003-07-21 2016-03-23 Kollmorgen Corp Highly efficient permanent magnet brushless motor
KR101115641B1 (en) * 2003-07-21 2012-02-17 콜모겐 코포레이션 Highly efficient permanent magnet brushless motor
WO2005011098A3 (en) * 2003-07-21 2005-05-26 Kollmorgen Corp Highly efficient permanent magnet brushless motor
CN100530893C (en) * 2003-07-21 2009-08-19 科勒摩根公司 Highly efficient permanent magnet brushless motor
US20050088047A1 (en) * 2003-10-22 2005-04-28 Crapo Alan D. Brushless permanent magnet motor with high power density, low cogging and low vibration
WO2005043723A1 (en) * 2003-10-22 2005-05-12 Emerson Electric Co. Brushless permanent magnet motor with high power density, low cogging and low vibration
US6946760B2 (en) 2003-10-22 2005-09-20 Emerson Electric Co. Brushless permanent magnet motor with high power density, low cogging and low vibration
US7138741B2 (en) * 2004-02-26 2006-11-21 Lg Electronics Inc. Stator of outer rotor type motor for drum type washing machine
US20050194859A1 (en) * 2004-02-26 2005-09-08 Lg Electronics Inc. Stator of outer rotor type motor for drum type washing machine
US20050194848A1 (en) * 2004-03-02 2005-09-08 Ahn In G BLDC Motor
EP1580870A3 (en) * 2004-03-04 2008-05-14 Lg Electronics Inc. BLDC motor
EP1580870A2 (en) * 2004-03-04 2005-09-28 Lg Electronics Inc. BLDC motor
US20050263369A1 (en) * 2004-05-07 2005-12-01 Magnemotion, Inc. Three-dimensional motion using single-pathway based actuators
US7926644B2 (en) 2004-05-07 2011-04-19 Magnemotion, Inc. Three-dimensional motion using single-pathway based actuators
US7458454B2 (en) 2004-05-07 2008-12-02 Magnemotion, Inc. Three-dimensional motion using single-pathway based actuators
US20060091744A1 (en) * 2004-10-29 2006-05-04 Hilton Daniel E Self-cooling electric machine
US7282823B2 (en) 2004-10-29 2007-10-16 Emerson Electric Co. Self-cooling electric machine
US20070044676A1 (en) * 2005-07-22 2007-03-01 Magnemotion Inc. Guideway activated magnetic switching of vehicles
US20080246224A1 (en) * 2005-09-21 2008-10-09 High Technology Investments, B.V. Combined Labyrinth Seal and Screw-Type Gasket Bearing Sealing Arrangement
US7946591B2 (en) 2005-09-21 2011-05-24 Wilic S.Ar.L. Combined labyrinth seal and screw-type gasket bearing sealing arrangement
US20090096309A1 (en) * 2005-11-29 2009-04-16 High Technology Investments, B.V. Core plate stack assembly for permanent magnet rotor of rotating machines
US7936102B2 (en) 2005-11-29 2011-05-03 Wilic S.Ar.L Magnet holder for permanent magnet rotors of rotating machines
US8310122B2 (en) 2005-11-29 2012-11-13 Wilic S.A.R.L. Core plate stack assembly for permanent magnet rotor or rotating machines
US20090302702A1 (en) * 2005-11-29 2009-12-10 High Technology Investments, B.V. Magnet holder for permanent magnet rotors of rotating machines
US9024488B2 (en) 2007-06-27 2015-05-05 Brooks Automation, Inc. Robot drive with magnetic spindle bearings
US8803513B2 (en) 2007-06-27 2014-08-12 Brooks Automation, Inc. Multiple dimension position sensor
US20110025310A1 (en) * 2007-06-27 2011-02-03 Brooks Automation, Inc. Position feedback for self bearing motor
US8283813B2 (en) 2007-06-27 2012-10-09 Brooks Automation, Inc. Robot drive with magnetic spindle bearings
US11002566B2 (en) 2007-06-27 2021-05-11 Brooks Automation, Inc. Position feedback for self bearing motor
US20090001907A1 (en) * 2007-06-27 2009-01-01 Brooks Automation, Inc. Commutation of an electromagnetic propulsion and guidance system
US20090033173A1 (en) * 2007-06-27 2009-02-05 Brooks Automation, Inc. Motor stator with lift capability and reduced cogging characteristics
US9752615B2 (en) 2007-06-27 2017-09-05 Brooks Automation, Inc. Reduced-complexity self-bearing brushless DC motor
US8823294B2 (en) 2007-06-27 2014-09-02 Brooks Automation, Inc. Commutation of an electromagnetic propulsion and guidance system
US8659205B2 (en) * 2007-06-27 2014-02-25 Brooks Automation, Inc. Motor stator with lift capability and reduced cogging characteristics
US8680803B2 (en) 2007-07-17 2014-03-25 Brooks Automation, Inc. Substrate processing apparatus with motors integral to chamber walls
US10505419B2 (en) 2008-06-19 2019-12-10 Windfin B.V. Wind power generator equipped with a cooling system
US9312741B2 (en) 2008-06-19 2016-04-12 Windfin B.V. Wind power generator equipped with a cooling system
US20100176600A1 (en) * 2008-06-19 2010-07-15 Rolic Invest S.Ar.L. Wind power generator equipped with a cooling system
US8492919B2 (en) 2008-06-19 2013-07-23 Wilic S.Ar.L. Wind power generator equipped with a cooling system
US8120198B2 (en) 2008-07-23 2012-02-21 Wilic S.Ar.L. Wind power turbine
US20100066188A1 (en) * 2008-09-16 2010-03-18 Asmo Co., Ltd. Brushless motor
US8022589B2 (en) * 2008-09-16 2011-09-20 Asmo Co., Ltd. Brushless motor
US8319362B2 (en) 2008-11-12 2012-11-27 Wilic S.Ar.L. Wind power turbine with a cooling system
US20100117362A1 (en) * 2008-11-12 2010-05-13 Rolic Invest S.Ar.L. Wind power turbine
US8669685B2 (en) 2008-11-13 2014-03-11 Wilic S.Ar.L. Wind power turbine for producing electric energy
US9346371B2 (en) 2009-01-23 2016-05-24 Magnemotion, Inc. Transport system powered by short block linear synchronous motors
US9771000B2 (en) 2009-01-23 2017-09-26 Magnemotion, Inc. Short block linear synchronous motors and switching mechanisms
US10112777B2 (en) 2009-01-23 2018-10-30 Magnemotion, Inc. Transport system powered by short block linear synchronous motors
US20100193394A1 (en) * 2009-01-30 2010-08-05 Wilic S.Ar.L. Wind power turbine blade packing and packing method
US8272822B2 (en) 2009-01-30 2012-09-25 Wilic S.Ar.L. Wind power turbine blade packing and packing method
US8274170B2 (en) 2009-04-09 2012-09-25 Willic S.A.R.L. Wind power turbine including a cable bundle guide device
US8659867B2 (en) 2009-04-29 2014-02-25 Wilic S.A.R.L. Wind power system for generating electric energy
US8410623B2 (en) 2009-06-10 2013-04-02 Wilic S. AR. L. Wind power electricity generating system and relative control method
US20110187218A1 (en) * 2009-08-07 2011-08-04 Wilic S.Ar.L. Method and apparatus for activating an electric machine, and electric machine
US8810347B2 (en) 2009-08-07 2014-08-19 Wilic S.Ar.L Method and apparatus for activating an electric machine, and electric machine
US8358189B2 (en) 2009-08-07 2013-01-22 Willic S.Ar.L. Method and apparatus for activating an electric machine, and electric machine
US8618689B2 (en) 2009-11-23 2013-12-31 Wilic S.Ar.L. Wind power turbine for generating electric energy
US8541902B2 (en) 2010-02-04 2013-09-24 Wilic S.Ar.L. Wind power turbine electric generator cooling system and method and wind power turbine comprising such a cooling system
US10348141B2 (en) 2010-03-25 2019-07-09 Panasonic Intellectual Property Management Co., Ltd. Motor with rotor and stator dimensions for reducing cogging torque and torque ripple
US20130076195A1 (en) * 2010-03-25 2013-03-28 Panasonic Corporation Motor and electrical apparatus housing same
US9502928B2 (en) * 2010-03-25 2016-11-22 Panasonic Intellectual Property Management Co., Ltd. Motor design for reducing cogging torque and torque ripple while maintaining efficiency
US8937397B2 (en) 2010-03-30 2015-01-20 Wilic S.A.R.L. Wind power turbine and method of removing a bearing from a wind power turbine
US8975770B2 (en) 2010-04-22 2015-03-10 Wilic S.Ar.L. Wind power turbine electric generator and wind power turbine equipped with an electric generator
US20120126654A1 (en) * 2010-11-23 2012-05-24 Nexteer (Beijing) Technology Co., Ltd. Permanent magnet brushless motor
US9006918B2 (en) 2011-03-10 2015-04-14 Wilic S.A.R.L. Wind turbine
US8957555B2 (en) 2011-03-10 2015-02-17 Wilic S.Ar.L. Wind turbine rotary electric machine
US8937398B2 (en) 2011-03-10 2015-01-20 Wilic S.Ar.L. Wind turbine rotary electric machine
CN102163902B (en) * 2011-03-23 2013-09-11 曾绍洪 Staggered multi-driving direct-current brushless motor
CN102163902A (en) * 2011-03-23 2011-08-24 高林发 Staggered multi-driving direct-current brushless motor
WO2013025550A2 (en) * 2011-08-12 2013-02-21 Aerovironment, Inc. Electric motor
WO2013025550A3 (en) * 2011-08-12 2014-05-15 Aerovironment, Inc. Electric motor
US9802507B2 (en) 2013-09-21 2017-10-31 Magnemotion, Inc. Linear motor transport for packaging and other uses
US20150340913A1 (en) * 2014-05-22 2015-11-26 Delta Electronics, Inc. Low-cog permanent magnet motor
US9356546B2 (en) * 2014-06-16 2016-05-31 Hyundai Motor Company Sensorless control method for motor and system using the same
US20150365029A1 (en) * 2014-06-16 2015-12-17 Hyundai Motor Company Sensorless control method for motor and system using the same

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